Obligate endosymbiosis enables genome expansion during eukaryogenesis
Publication date
2023-07-25
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Abstract
The endosymbiosis of an alpha-proteobacterium that gave rise to mitochondria was one of the key events in eukaryogenesis. One striking outcome of eukaryogenesis was a much more complex cell with a large genome. Despite the existence of many alternative hypotheses for this and other patterns potentially related to endosymbiosis, a constructive evolutionary model in which these hypotheses can be studied is still lacking. Here, we present a theoretical approach in which we focus on the consequences rather than the causes of mitochondrial endosymbiosis. Using a constructive evolutionary model of cell-cycle regulation, we find that genome expansion and genome size asymmetry arise from emergent host–symbiont cell-cycle coordination. We also find that holobionts with large host and small symbiont genomes perform best on long timescales and mimic the outcome of eukaryogenesis. By designing and studying a constructive evolutionary model of obligate endosymbiosis, we uncovered some of the forces that may drive the patterns observed in nature. Our results provide a theoretical foundation for patterns related to mitochondrial endosymbiosis, such as genome size asymmetry, and reveal evolutionary outcomes that have not been considered so far, such as cell-cycle coordination without direct communication.
Keywords
Diversification, Evolution, Gene-transfer, Nucleus, Origin, Selection, Medicine (miscellaneous), General Biochemistry,Genetics and Molecular Biology, General Agricultural and Biological Sciences
Citation
von der Dunk, S H A, Hogeweg, P & Snel, B 2023, 'Obligate endosymbiosis enables genome expansion during eukaryogenesis', Communications Biology, vol. 6, no. 1, 777, pp. 1-10. https://doi.org/10.1038/s42003-023-05153-x